Nutrient stress triggers sugar-mediated carotenoid production in algal-bacterial interactions

被引:1
作者
Makaranga, Abdalah [1 ]
Jutur, Pannaga Pavan [1 ]
机构
[1] Int Ctr Genet Engn & Biotechnol, Om Algae Grp, Ind Biotechnol, Aruna Asaf Ali Marg, New Delhi 110067, India
关键词
Bacteria; Algae; Metabolomics; Trehalose; Sucrose and carotenoids; GROWTH; EVOLUTION;
D O I
10.1007/s11274-025-04310-0
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
This study examined the impact of co-culturing Chlorella saccharophila (UTEX247) with Exiguobacterium sp. strain AMK1 on carotenoid production under nitrate-depleted conditions and 3% CO2 supplementation. The co-culture significantly enhanced the productivity of lutein (238.31 mu g.L(-)(1)d(-)(1)), zeaxanthin (220.72 mu g.L(-)(1)d(-)(1)), violaxanthin (185.42 mu g.L(-)(1)d(-)(1)), and antheraxanthin (84.07 mu g.L(-)(1)d(-)(1)). Compared to nitrate-repleted mono-cultures, these carotenoids increased by 3.54-fold, 4.81-fold, 12.28-fold, and 9.34-fold, respectively. The violaxanthin cycle, activated by CO2 supplementation, resulted in higher zeaxanthin production, verified through HPLC analysis. Metabolic profiling highlighted a notable rise in sucrose, an algal-specific metabolite, in the co-culture, reflecting enhanced carbon metabolism and carotenoid synthesis. Conversely, trehalose levels were significantly higher in the bacterial mono-culture (297.77 mu g.mL(-)(1)) than in the co-culture (88.84 mu g.mL(-)(1)), showing a 1.68-fold reduction as confirmed by GC-MS/MS. This suggests trehalose as a stress marker, with its reduction indicating mutualistic interactions between algal and bacterial. Overall, the co-culture strategy emerges as a promising approach to activate unexpressed pathways, generate novel metabolites, and enhance yields of valuable carotenoids like lutein and zeaxanthin. This aligns with the principles of a circular bioeconomy, leveraging bacterial biofertilizers, valorizing CO2, and minimizing chemical dependency, thus offering potential for biorefinery applications.
引用
收藏
页数:14
相关论文
共 43 条
[31]   Microbial trehalose boosts the ecological fitness of biocontrol agents, the viability of probiotics during long-term storage and plants tolerance to environmental-driven abiotic stress [J].
Onwe, Reuben O. ;
Onwosi, Chukwudi O. ;
Ezugworie, Flora N. ;
Ekwealor, Chito C. ;
Okonkwo, Chigozie C. .
SCIENCE OF THE TOTAL ENVIRONMENT, 2022, 806
[32]  
Pandey N., 2020, Beneficial Microbes in Agro-Ecology, P169, DOI [10.1016/b978-0-12-823414-3.00010-1, DOI 10.1016/B978-0-12-823414-3.00010-1]
[33]   Metabolic interactions between microalgae and bacteria: Multifunctional ecological interplay and environmental applications [J].
Patidar, Shailesh Kumar .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2025, 86
[34]   Trehalose-6-phosphate: connecting plant metabolism and development [J].
Ponnu, Jathish ;
Wahl, Vanessa ;
Schmid, Markus .
FRONTIERS IN PLANT SCIENCE, 2011, 2
[35]   Tips and tricks for LC-MS-based metabolomics and lipidomics analysis [J].
Rakusanova, Stanislava ;
Cajka, Tomas .
TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2024, 180
[36]   Algae-bacteria interactions: Evolution, ecology and emerging applications [J].
Ramanan, Rishiram ;
Kim, Byung-Hyuk ;
Cho, Dae-Hyun ;
Oh, Hee-Mock ;
Kim, Hee-Sik .
BIOTECHNOLOGY ADVANCES, 2016, 34 (01) :14-29
[37]   Dynamic metabolic exchange governs a marine algal-bacterial interaction [J].
Segev, Einat ;
Wyche, Thomas P. ;
Kim, Ki Hyun ;
Petersen, Joern ;
Ellebrandt, Claire ;
Vlamakis, Hera ;
Barteneva, Natasha ;
Paulson, Joseph N. ;
Chai, Liraz ;
Clardy, Jon ;
Kolter, Roberto .
ELIFE, 2016, 5
[38]   Molecular profiling of an oleaginous trebouxiophycean alga Parachlorella kessleri subjected to nutrient deprivation for enhanced biofuel production [J].
Shaikh, Kashif Mohd ;
Nesamma, Asha Arumugam ;
Abdin, Malik Zainul ;
Jutur, Pannaga Pavan .
BIOTECHNOLOGY FOR BIOFUELS, 2019, 12 (1)
[39]   Characterisation of bacteria from the cultures of a Chlorella strain isolated from textile wastewater and their growth enhancing effects on the axenic cultures of Chlorella vulgaris in low nutrient media [J].
Tait, Karen ;
White, Dan A. ;
Kimmance, Susan A. ;
Tarran, Glen ;
Rooks, Paul ;
Jones, Mark ;
Llewellyn, Carole A. .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2019, 44
[40]   Screening of a Chlorella-bacteria consortium and research on piggery wastewater purification [J].
Wang, Yuanyuan ;
Wang, Shuya ;
Sun, Liqin ;
Sun, Zhongliang ;
Li, Dan .
ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2020, 47